Literature DB >> 22998079

Impact of SOD in eNOS uncoupling: a two-edged sword between hydrogen peroxide and peroxynitrite.

Saptarshi Kar1, Bhagyesh Bhandar, Mahendra Kavdia.   

Abstract

In endothelial cell dysfunction, the uncoupling of eNOS results in higher superoxide (O(2)(•-)) and lower NO production and a reduction in NO availability. Superoxide reacts with NO to form a potent oxidizing agent peroxynitrite (ONOO(-)) resulting in nitrosative and nitroxidative stresses and dismutates to form hydrogen peroxide. Studies have shown superoxide dismutase (SOD) plays an important role in reduction of O(2)(•-) and ONOO(-) during eNOS uncoupling. However, the administration or over-expression of SOD was ineffective or displayed deleterious effects in some cases. An understanding of interactions of the two enzyme systems eNOS and SOD is important in determining endothelial cell function. We analyzed complex biochemical interactions involving eNOS and SOD in eNOS uncoupling. A computational model of biochemical pathway of the eNOS-related NO and O(2)(•-) production and downstream reactions involving NO, O(2)(•-), ONOO(-), H(2)O(2) and SOD was developed. The effects of SOD concentration on the concentration profiles of NO, O(2)(•-), ONOO(-) and H(2)O(2) in eNOS coupling/uncoupling were investigated. The results include (i) SOD moderately improves NO production and concentration during eNOS uncoupling, (ii) O(2)(•-) production rate is independent of SOD concentration, (iii) Increase in SOD concentration from 0.1 to 100 μM reduces O(2)(•-) concentration by 90% at all [BH(4)]/[TBP] ratios, (iv) SOD reduces ONOO(-) concentration and increases H(2)O(2) concentration during eNOS uncoupling, (v) Catalase can reduce H(2)O(2) concentration and (vi) Dismutation rate by SOD is the most sensitive parameter during eNOS uncoupling. Thus, SOD plays a dual role in eNOS uncoupling as an attenuator of nitrosative/nitroxidative stress and an augmenter of oxidative stress.

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Year:  2012        PMID: 22998079     DOI: 10.3109/10715762.2012.731052

Source DB:  PubMed          Journal:  Free Radic Res        ISSN: 1029-2470


  8 in total

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4.  Endothelial NO and O₂·⁻ production rates differentially regulate oxidative, nitroxidative, and nitrosative stress in the microcirculation.

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7.  Hyperglycemia induces differential change in oxidative stress at gene expression and functional levels in HUVEC and HMVEC.

Authors:  Hemang Patel; Juan Chen; Kumuda C Das; Mahendra Kavdia
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8.  Endothelial dysfunction and myocardial injury after major emergency abdominal surgery: a prospective cohort study.

Authors:  Sarah Ekeloef; Jakob Ohm Oreskov; Andreas Falkenberg; Jakob Burcharth; Anne Marie V Schou-Pedersen; Jens Lykkesfeldt; Ismail Gögenur
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  8 in total

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